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Concurrent Modelling and Experimental Investigation of Material Properties and Geometries Produced by Projection Microstereolithography

Projection microstereolithography additive manufacturing (PµSLA-AM) systems utilize free radical photopolymerization to selectively transform liquid resins into accurate and complex, shaped, solid parts upon UV light exposure. The material properties are coupled with geometrical accuracy, implying t...

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Autores principales: Mostafa, Khaled G., Arshad, Muhammad, Ullah, Aman, Nobes, David S., Qureshi, Ahmed Jawad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7182805/
https://www.ncbi.nlm.nih.gov/pubmed/32110926
http://dx.doi.org/10.3390/polym12030506
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author Mostafa, Khaled G.
Arshad, Muhammad
Ullah, Aman
Nobes, David S.
Qureshi, Ahmed Jawad
author_facet Mostafa, Khaled G.
Arshad, Muhammad
Ullah, Aman
Nobes, David S.
Qureshi, Ahmed Jawad
author_sort Mostafa, Khaled G.
collection PubMed
description Projection microstereolithography additive manufacturing (PµSLA-AM) systems utilize free radical photopolymerization to selectively transform liquid resins into accurate and complex, shaped, solid parts upon UV light exposure. The material properties are coupled with geometrical accuracy, implying that optimizing one response will affect the other. Material properties can be enhanced by the post-curing process, while geometry is controlled during manufacturing. This paper uses designed experiments and analytical curing models concurrently to investigate the effects of process parameters on the green material properties (after manufacturing and before applying post curing), and the geometrical accuracy of the manufactured parts. It also presents a novel accumulated energy model that considers the light absorbance of the liquid resin and solid polymer. An essential definition, named the irradiance affected zone (IAZ), is introduced to estimate the accumulated energy for each layer and to assess the feasibility of the geometries. Innovative methodologies are used to minimize the effect of irradiance irregularities on the responses and to characterize the light absorbance of liquid and cured resin. Analogous to the working curve, an empirical model is proposed to define the critical energies required to start developing the different material properties. The results of this study can be used to develop an appropriate curing scheme, to approximate an initial solution and to define constraints for projection microstereolithography geometry optimization algorithms.
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spelling pubmed-71828052020-05-01 Concurrent Modelling and Experimental Investigation of Material Properties and Geometries Produced by Projection Microstereolithography Mostafa, Khaled G. Arshad, Muhammad Ullah, Aman Nobes, David S. Qureshi, Ahmed Jawad Polymers (Basel) Article Projection microstereolithography additive manufacturing (PµSLA-AM) systems utilize free radical photopolymerization to selectively transform liquid resins into accurate and complex, shaped, solid parts upon UV light exposure. The material properties are coupled with geometrical accuracy, implying that optimizing one response will affect the other. Material properties can be enhanced by the post-curing process, while geometry is controlled during manufacturing. This paper uses designed experiments and analytical curing models concurrently to investigate the effects of process parameters on the green material properties (after manufacturing and before applying post curing), and the geometrical accuracy of the manufactured parts. It also presents a novel accumulated energy model that considers the light absorbance of the liquid resin and solid polymer. An essential definition, named the irradiance affected zone (IAZ), is introduced to estimate the accumulated energy for each layer and to assess the feasibility of the geometries. Innovative methodologies are used to minimize the effect of irradiance irregularities on the responses and to characterize the light absorbance of liquid and cured resin. Analogous to the working curve, an empirical model is proposed to define the critical energies required to start developing the different material properties. The results of this study can be used to develop an appropriate curing scheme, to approximate an initial solution and to define constraints for projection microstereolithography geometry optimization algorithms. MDPI 2020-02-26 /pmc/articles/PMC7182805/ /pubmed/32110926 http://dx.doi.org/10.3390/polym12030506 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mostafa, Khaled G.
Arshad, Muhammad
Ullah, Aman
Nobes, David S.
Qureshi, Ahmed Jawad
Concurrent Modelling and Experimental Investigation of Material Properties and Geometries Produced by Projection Microstereolithography
title Concurrent Modelling and Experimental Investigation of Material Properties and Geometries Produced by Projection Microstereolithography
title_full Concurrent Modelling and Experimental Investigation of Material Properties and Geometries Produced by Projection Microstereolithography
title_fullStr Concurrent Modelling and Experimental Investigation of Material Properties and Geometries Produced by Projection Microstereolithography
title_full_unstemmed Concurrent Modelling and Experimental Investigation of Material Properties and Geometries Produced by Projection Microstereolithography
title_short Concurrent Modelling and Experimental Investigation of Material Properties and Geometries Produced by Projection Microstereolithography
title_sort concurrent modelling and experimental investigation of material properties and geometries produced by projection microstereolithography
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7182805/
https://www.ncbi.nlm.nih.gov/pubmed/32110926
http://dx.doi.org/10.3390/polym12030506
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